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Enhancing Event Candidate Acquisition for Event Linking

arXiv · AI, language, vision and robotics · article · Sep 12, 2026 · UTC

Event linking associates event mentions in text with entries in a knowledge base (KB), or identifies them as out-of-KB events. Although existing methods use different architectures, candidate event acquisition can still be weakened by short ambiguous mentions, noisy arguments, and evidence that is unevenly useful for retrieval. We present MACE, a Multi-Agent Candidate Event acquisition method that refines event structure before linking. MACE uses evidence-specialized LLM agents to acquire time, location, participant, and event-type evidence, exposes intermediate queries to candidate-event look

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First collected: 2026-09-20T16:41:15.630Z. This is not the publication date.